research communications\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

Journal logoCRYSTALLOGRAPHIC
COMMUNICATIONS
ISSN: 2056-9890

Synthesis, crystal structure and Hirshfeld surface analysis of 1-(3,4-di­chloro­phen­yl)-4,4,6-tri­methyl-3,4-di­hydro­pyrimidine-2(1H)-thione

crossmark logo

aDepartment of Chemistry, Yenepoya Institute of Arts, Science, Commerce and Management, Mangaluru, Yenepoya University (Deemed to be University), 575013 Karnataka, India, and bHacettepe University, Department of Physics, 06800 Beytepe-Ankara, Türkiye
*Correspondence e-mail: [email protected]

Edited by N. Alvarez Failache, Universidad de la Repüblica, Uruguay (Received 16 June 2026; accepted 14 July 2026; online 16 July 2026)

The title compound, C13H14Cl2N2S, consists of di­chloro­phenyl and di­hydro­pyrimidine­thione rings, where the pyrimidine ring is in a flattened-boat conformation. In the crystal, N—H⋯S hydrogen bonds link the mol­ecules, enclosing R22(8) ring motifs, into centrosymmetric dimers. Neither ππ stacking nor C—H⋯π(ring) inter­actions are observed. Hirshfeld surface analysis revealed that the most important contributions for crystal packing are from H⋯H (40.8%), H⋯Cl/Cl⋯H (28.7%) and H⋯S/S⋯H (15.5%) inter­actions. The volume of the crystal voids and the percentage of free space were calculated to be 135.01 Å3 and 17.99%, showing the crystal packing is not compact. Computational methods indicated an N—H⋯S hydrogen-bonding energy of −58.2 kJ mol−1. Evaluations of the electrostatic, dispersion and total energy frameworks indicate that the crystal cohesion is dominated by electrostatic energy contributions.

1. Chemical context

Heterocyclic compounds containing pyrimidine and di­hydro­pyrimidine frameworks have attracted sustained inter­est because of their wide range of biological and pharmacological activities, including anti­bacterial, anti­fungal, anti­tubercular and anti-inflammatory properties (Kappe, 2000View full citation; Leite et al., 2006View full citation; Sriram et al., 2006View full citation). In particular, Biginelli-type di­hydro­pyrimidine derivatives are recognized as important structural motifs in medicinal chemistry and synthetic organic chemistry owing to their diverse therapeutic potentials and convenient synthetic accessibilities.

[Scheme 1]

Continuing our inter­est in the syntheses and structural characterizations of biologically significant heterocyclic compounds (Alam et al., 2005View full citation), the title compound was prepared and investigated. Herein, we report its mol­ecular and crystal structures together with the results of Hirshfeld surface (HS), crystal void analyses and inter­action energy calculations and energy frameworks of the title compound, (I)[link].

2. Structural commentary

The title compound, (I)[link], contains a planar phenyl ring and a six-membered nitro­gen-containing heterocyclic di­hydro­pyrimidine­thione ring (Fig. 1[link]). The 3,4-di­chloro­phenyl, dimethyl and methyl substituents are bonded to the 3,4-di­hydro­pyrimidine-2(1H)-thione ring at the N1, C2 and C4 positions, respectively. The pyrimidine, A (N1/N2/C1–C4), ring is in flattened-boat conformation (Fig. 2[link]) with puckering parameters (Cremer & Pople, 1975View full citation) QT = 0.184 (3) Å, θ = 70.8 (9)° and φ = 174.4 (11)°. It is reported to be planar in 4,4,6-trimethyl-1-phenyl-3,4-di­hydro-pyrimidine-2(1H)-thione [(II); Yamin et al., 2005View full citation], N-benzoyl-N′-phenyl­thio­urea [(III); Yamin & Yusof, 2003View full citation] and 1-ethyl-5-(4-meth­oxy­benzo­yl)-4-(4-meth­oxy­phen­yl)pyrimidine-2(1H)-thione [(IV); Özçelik et al., 2004View full citation]. The S1=C1 [1.692 (2) Å], C1—N1 [1.361 (3) Å] and C1—N2 [1.323 (3) Å] bond lengths are comparable with the corresponding values in compounds II—IV. Other bond lengths are in normal ranges (Allen et al., 1987View full citation).

[Figure 1]
Figure 1
The asymmetric unit with the atom-numbering scheme and 50% probability ellipsoids.
[Figure 2]
Figure 2
Conformation of the pyrimidine ring.

3. Supra­molecular features, Hirshfeld surface analysis, void analysis, inter­action energies and energy frameworks

In the crystal, N—H⋯S hydrogen bonds (Table 1[link]) link the mol­ecules, enclosing R22(8) ring motifs (Etter et al., 1990View full citation), into centrosymmetric dimers (Fig. 3[link]a). The supra­molecular dimer formation through the N—H⋯S hydrogen bonds is shown in Fig. 3[link]b. Neither ππ stacking nor C—H⋯π(ring) inter­actions are observed.

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
N2—H2N⋯S1i 0.85 (2) 2.55 (2) 3.375 (2) 163 (3)
Symmetry code: (i) Mathematical equation.
[Figure 3]
Figure 3
(a) The dimer formation through N—H⋯S hydrogen bonds (shown as dashed lines) with an R22(8) ring motif. (b) A partial packing diagram viewed down the b-axis direction showing the supra­molecular dimer formation. The N—H⋯S hydrogen bonds are shown as dashed lines.

The inter­molecular inter­actions in the crystal were visualized by carrying out a Hirshfeld surface (HS) analysis using CrystalExplorer 17.5 (Spackman et al., 2021View full citation). Fig. 4[link] shows the Hirshfeld surface with several neighbouring mol­ecules in the crystal. The white surface indicates contacts with distances equal to the sum of van der Waals radii, and the red and blue colours indicate distances shorter (in close contact) or longer (distant contacts) than the sum of the van der Waals radii, respectively. The red spots indicate their roles as the respective donors and/or acceptors atoms in hydrogen bonding, as discussed above; they also appear as the blue and red regions corresponding to positive and negative potentials on the HS mapped over electrostatic potential as shown in Fig. 5[link]. The blue and red regions indicate positive (hydrogen-bond donors) and negative (hydrogen-bond acceptors) electrostatic potentials.

[Figure 4]
Figure 4
View of the three-dimensional Hirshfeld surface plotted over dnorm in the range −0.3452 to 1.4957 a.u.
[Figure 5]
Figure 5
View of the three-dimensional Hirshfeld surface of the title compound plotted over electrostatic potential in the range −0.0500 to 0.0500 a.u. using the STO-3 G basis set at the Hartree–Fock level of theory. Hydrogen-bond donors and acceptors are shown as blue and red regions around the atoms, corresponding to positive and negative potentials, respectively.

The overall two-dimensional fingerprint plot is shown in Fig. 6[link]a and those delineated into H⋯H, H⋯Cl/Cl⋯H, H⋯S/S⋯H, H⋯C/C ⋯ H, C⋯Cl/Cl⋯C, Cl⋯Cl, N⋯Cl/Cl⋯N, H⋯N/N⋯H, C⋯C and S⋯Cl/Cl⋯S inter­actions are illustrated in Fig. 6[link](b)–(k), respectively. According to the two-dimensional fingerprint plots the H⋯H, H⋯Cl/Cl⋯H, and H⋯S/S⋯H contacts make the most significant contributions to the HS, at 40.8%, 28.7% and 15.5%, respectively (Fig. 6[link]).

[Figure 6]
Figure 6
The two-dimensional fingerprint plots for title mol­ecule, showing (a) all inter­actions, and delineated into (b) H⋯H, (c) H⋯Cl/Cl⋯H, (d) H⋯S/S⋯H, (e) H⋯C/C⋯H, (f) C⋯Cl/Cl⋯C, (g) Cl⋯Cl, (h) N⋯Cl/Cl⋯N, (i) H⋯N/N⋯H, (j) C⋯C and (k) S⋯Cl/Cl⋯S inter­actions. The di and de values are the closest inter­nal and external distances (in Å) from given points on the Hirshfeld surface.

The strength of the crystal packing depends on the tight packing of the mol­ecules, which results in insignificant voids. To check the strength of the crystal, a void analysis was performed. The volume of the crystal voids (Fig. 7[link]a and b) and the percentage of free space in the unit cell were calculated to be 135.01 Å3 and 17.99%, respectively. Thus, the crystal packing appears to be not compact.

[Figure 7]
Figure 7
Crystal voids viewed down the (a) a-axis and (b) b-axis directions.

The inter­molecular inter­action energies are calculated using the CE–B3LYP/6–31G(d,p) energy model available in CrystalExplorer 17.5 (Spackman et al., 2021View full citation), where a cluster of mol­ecules is generated by applying crystallographic symmetry operations with respect to a selected central mol­ecule within the radius of 3.8 Å by default. The total inter­molecular energy (Etot) is the sum of electrostatic (Eele), polarization (Epol), dispersion (Edis) and exchange-repulsion (Erep) energies (Turner et al., 2015View full citation) with scale factors of 1.057, 0.740, 0.871 and 0.618, respectively (Mackenzie et al., 2017View full citation). Hydrogen-bonding inter­action energies (in kJ mol−1) were calculated to be −80.2 (Eele), −20.0 (Epol), −22.8 (Edis), 70.4 (Erep) and −58.2 (Etot) for N2—H2N⋯S1.

Energy frameworks combine the calculation of inter­molecular inter­action energies with a graphical representation of their magnitudes, in which they were constructed for Eele (red cylinders), Edis (green cylinders) and Etot (blue cylinders) (Fig. 8[link]a, b and c). The evaluations of the electrostatic, dispersion and total energy frameworks indicate that the stabilization is dominated via the electrostatic energy contributions in the crystal structure of the title compound.

[Figure 8]
Figure 8
The energy frameworks for a cluster of mol­ecules of the title compound viewed down the a-axis showing the (a) electrostatic energy, (b) dispersion energy and (c) total energy diagrams. The cylindrical radius is proportional to the relative strength of the corresponding energies and they were adjusted to the same scale factor of 80 with cut-off value of 5 kJ mol−1 within 2 × 2 × 2 unit cells.

4. Database survey

A search of the Cambridge Structural Database (CSD, Version 6.00, updated May 2025; Groom et al., 2016View full citation) revealed six closely related structures of 1-aryl-4,4,6-trimethyl-3,4-di­hydro­pyrimidine-2(1H)-thione derivative, viz.: 1-(4-fluoro­phen­yl)-4,4,6-trimethyl-3,4-di­hydro­pyrimidine-2(1H)-thione, C13H15FN2S (CSD refcode ASEHIR; Kadir et al., 2016View full citation), 1-(3-chloro­phen­yl)-4,4,6-trimethyl-3,4-di­hydro­pyrimidine-2(1H)-thione, C13H15ClN2S (CSD refcode IJUGEA; Yamin & Salem, 2011aView full citation), 1-(3-fluoro­phen­yl)-4,4,6-trimethyl-3,4-di­hydro­pyrim­idine-2(1H)-thione, C13H15FN2S (CSD refcode EVEWIM; Yamin et al., 2011bView full citation), 4,4,6-trimethyl-1-phenyl-3,4-di­hydro­pyrimidine-2(1H)-thione, C13H16N2S (Yamin et al., 2005View full citation), 1-(4-chloro­phen­yl)-4,4,6-trimethyl-3,4-di­hydro­pyrimidine-2(1H)-thione, C13H15ClN2S (CSD refcode DUNZIW; Saeed & Bolte, 2010aView full citation) and 4,4,6-trimethyl-1-(3-methyl­phen­yl)-3,4-di­hydro­pyrimidine-2(1H)-thione, C14H18N2S (CSD refcode PUJYID; Saeed et al., 2010bView full citation). The title compound differs from these reported structures by the presence of chlorine substituents at both the 3- and 4- positions of the phenyl ring. Similar to several related derivatives, the crystal packing is consolidated by N—H⋯S hydrogen bonds, forming centrosymmetric dimers.

5. Synthesis and crystallization

3,4-Di­chloro aniline (0.16 g, 1.0 mmol) was added portion-wise to a stirred solution of potassium thio­cyanate (0.09 g, 1.0 mmol) in acetone containing one drop of H2SO4 at room temperature. The reaction mixture was then heated at 232–333 K for 3 h while being monitored using thin-layer chromatography. After the reaction was complete, the content was cooled to room temperature, and then poured into ice–water. The resulting precipitate was filtered, dried and recrystallized at room temperature from ethanol solution by gradual evaporation. Colourless crystals suitable for X-ray analysis were obtained by slow evaporation of aceto­nitrile. Colourless, yield 86%, m.p. 468 K, IR (KBr) cm−1: 3285 (N—H str.), 1530 (C=S str.), 3176 (Ar. C—H str.).

6. Refinement

Crystal data, data collection and structure refinement details are summarized in Table 2[link]. The NH hydrogen atoms were located from difference-Fourier maps and refined isotropically. The C-bound hydrogen-atom positions were calculated geometrically at distances of 0.93 Å (for aromatic CH) and 0.96 Å (for methyl CH) and refined using a riding model by applying the constraint Uiso(H) = k × Ueq (C), where k = 1.5 for methyl hydrogens and k = 1.2 for the other H atoms.

Table 2
Experimental details

Crystal data
Chemical formula C13H14Cl2N2S
Mr 301.22
Crystal system, space group Triclinic, PMathematical equation
Temperature (K) 293
a, b, c (Å) 7.916 (1), 8.927 (1), 11.759 (2)
α, β, γ (°) 99.93 (1), 107.18 (1), 102.32 (1)
V3) 750.52 (19)
Z 2
Radiation type Mo Kα
μ (mm−1) 0.56
Crystal size (mm) 0.50 × 0.36 × 0.34
 
Data collection
Diffractometer Oxford Diffraction Xcalibur with Sapphire CCD
Absorption correction Multi-scan (CrysAlis RED; Oxford Diffraction, 2006View full citation
Tmin, Tmax 0.769, 0.834
No. of measured, independent and observed [I > 2σ(I)] reflections 5185, 3026, 2502
Rint 0.014
(sin θ/λ)max−1) 0.625
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.047, 0.131, 1.09
No. of reflections 3026
No. of parameters 166
No. of restraints 1
H-atom treatment H atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å−3) 0.34, −0.36
Computer programs: CrysAlis CCD and CrysAlis RED (Oxford Diffraction, 2006View full citation), SHELXT2014/5 (Sheldrick, 2015aView full citation), SHELXL2018/3 (Sheldrick, 2015bView full citation), ORTEP-3 for Windows and WinGX publication routines (Farrugia, 2012View full citation) and PLATON (Spek, 2020View full citation).

Supporting information


Computing details top

1-(3,4-Dichlorophenyl)-4,4,6-trimethyl-3,4-dihydropyrimidine-2(1H)-thione top
Crystal data top
C13H14Cl2N2SZ = 2
Mr = 301.22F(000) = 312
Triclinic, P1Dx = 1.333 Mg m3
a = 7.916 (1) ÅMo Kα radiation, λ = 0.71073 Å
b = 8.927 (1) ÅCell parameters from 2526 reflections
c = 11.759 (2) Åθ = 2.7–27.9°
α = 99.93 (1)°µ = 0.56 mm1
β = 107.18 (1)°T = 293 K
γ = 102.32 (1)°Prism, colourless
V = 750.52 (19) Å30.50 × 0.36 × 0.34 mm
Data collection top
Oxford Diffraction Xcalibur with Sapphire CCD
diffractometer
2502 reflections with I > 2σ(I)
Rotation method data acquisition using ω scans.Rint = 0.014
Absorption correction: multi-scan
(CrysAlis RED; Oxford Diffraction, 2006
θmax = 26.4°, θmin = 2.7°
Tmin = 0.769, Tmax = 0.834h = 99
5185 measured reflectionsk = 1011
3026 independent reflectionsl = 1414
Refinement top
Refinement on F21 restraint
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.047H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.131 w = 1/[σ2(Fo2) + (0.0531P)2 + 0.5196P]
where P = (Fo2 + 2Fc2)/3
S = 1.09(Δ/σ)max < 0.001
3026 reflectionsΔρmax = 0.34 e Å3
166 parametersΔρmin = 0.36 e Å3
Special details top

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
C10.3026 (3)0.5937 (3)0.1548 (2)0.0422 (5)
C20.2695 (4)0.8680 (3)0.1621 (3)0.0603 (7)
C30.4444 (5)0.9152 (4)0.2678 (4)0.0816 (11)
H30.4858461.0194110.3149550.098*
C40.5456 (4)0.8184 (3)0.2995 (3)0.0627 (8)
C50.5946 (3)0.5528 (3)0.2628 (2)0.0434 (5)
C60.5958 (3)0.4814 (3)0.3573 (2)0.0465 (6)
H60.5164230.4940280.4004710.056*
C70.7150 (4)0.3909 (3)0.3879 (2)0.0480 (6)
C80.8296 (4)0.3696 (3)0.3222 (3)0.0540 (6)
C90.8260 (4)0.4402 (4)0.2263 (3)0.0649 (8)
H90.9026970.4252680.1813830.078*
C100.7088 (4)0.5327 (4)0.1971 (3)0.0574 (7)
H100.7070630.5813040.1330100.069*
C110.2915 (7)0.9217 (5)0.0513 (4)0.1110 (16)
H11A0.3339861.0352500.0718880.166*
H11B0.3794890.8780310.0262620.166*
H11C0.1749660.8858960.0147260.166*
C120.1231 (6)0.9308 (5)0.1992 (5)0.1088 (15)
H12A0.1622911.0445640.2218500.163*
H12B0.0088370.8943920.1310860.163*
H12C0.1062510.8929580.2677810.163*
C130.7245 (5)0.8681 (4)0.4024 (4)0.0966 (14)
H13A0.7730230.7788970.4084960.145*
H13B0.8096300.9498300.3874480.145*
H13C0.7065520.9078970.4779220.145*
N10.4778 (3)0.6555 (2)0.23637 (19)0.0465 (5)
N20.2043 (3)0.6938 (3)0.1281 (2)0.0554 (6)
Cl10.71964 (14)0.30829 (10)0.51126 (7)0.0761 (3)
Cl20.98030 (13)0.25664 (12)0.35758 (10)0.0907 (3)
S10.21347 (9)0.39621 (7)0.09242 (7)0.0518 (2)
H2N0.094 (3)0.652 (3)0.078 (2)0.062*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
C10.0414 (12)0.0430 (12)0.0441 (12)0.0150 (10)0.0137 (10)0.0139 (10)
C20.0642 (17)0.0437 (14)0.0679 (18)0.0224 (13)0.0089 (14)0.0166 (13)
C30.079 (2)0.0437 (16)0.095 (3)0.0202 (15)0.0047 (19)0.0087 (16)
C40.0581 (16)0.0415 (14)0.0708 (19)0.0116 (12)0.0006 (14)0.0107 (13)
C50.0388 (12)0.0433 (12)0.0455 (13)0.0140 (10)0.0106 (10)0.0082 (10)
C60.0527 (14)0.0453 (13)0.0455 (13)0.0204 (11)0.0185 (11)0.0102 (10)
C70.0562 (15)0.0394 (12)0.0436 (13)0.0176 (11)0.0097 (11)0.0068 (10)
C80.0468 (14)0.0476 (14)0.0623 (16)0.0227 (11)0.0094 (12)0.0052 (12)
C90.0557 (17)0.078 (2)0.0727 (19)0.0291 (15)0.0333 (15)0.0167 (16)
C100.0533 (15)0.0718 (18)0.0558 (16)0.0226 (13)0.0234 (13)0.0240 (14)
C110.144 (4)0.072 (2)0.103 (3)0.007 (3)0.028 (3)0.042 (2)
C120.090 (3)0.083 (3)0.138 (4)0.046 (2)0.020 (3)0.007 (3)
C130.075 (2)0.0499 (17)0.118 (3)0.0162 (16)0.022 (2)0.0000 (18)
N10.0443 (11)0.0431 (11)0.0505 (12)0.0162 (9)0.0104 (9)0.0134 (9)
N20.0468 (12)0.0428 (12)0.0681 (15)0.0166 (10)0.0048 (11)0.0137 (10)
Cl10.1138 (7)0.0656 (5)0.0650 (5)0.0473 (5)0.0301 (5)0.0312 (4)
Cl20.0794 (6)0.0843 (6)0.1211 (8)0.0566 (5)0.0286 (5)0.0269 (5)
S10.0471 (4)0.0416 (3)0.0619 (4)0.0150 (3)0.0103 (3)0.0129 (3)
Geometric parameters (Å, º) top
C1—N21.323 (3)C7—Cl11.732 (3)
C1—N11.361 (3)C8—C91.379 (4)
C1—S11.692 (2)C8—Cl21.726 (3)
C2—N21.472 (3)C9—C101.378 (4)
C2—C31.480 (4)C9—H90.9300
C2—C111.507 (5)C10—H100.9300
C2—C121.529 (5)C11—H11A0.9600
C3—C41.326 (4)C11—H11B0.9600
C3—H30.9300C11—H11C0.9600
C4—N11.419 (3)C12—H12A0.9600
C4—C131.484 (4)C12—H12B0.9600
C5—C61.371 (3)C12—H12C0.9600
C5—C101.372 (4)C13—H13A0.9600
C5—N11.443 (3)C13—H13B0.9600
C6—C71.378 (3)C13—H13C0.9600
C6—H60.9300N2—H2N0.851 (17)
C7—C81.376 (4)
N2—C1—N1117.4 (2)C8—C9—H9120.0
N2—C1—S1121.53 (19)C5—C10—C9119.7 (3)
N1—C1—S1121.06 (17)C5—C10—H10120.1
N2—C2—C3107.2 (2)C9—C10—H10120.1
N2—C2—C11108.3 (3)C2—C11—H11A109.5
C3—C2—C11113.0 (3)C2—C11—H11B109.5
N2—C2—C12107.8 (3)H11A—C11—H11B109.5
C3—C2—C12110.5 (3)C2—C11—H11C109.5
C11—C2—C12109.8 (3)H11A—C11—H11C109.5
C4—C3—C2124.2 (3)H11B—C11—H11C109.5
C4—C3—H3117.9C2—C12—H12A109.5
C2—C3—H3117.9C2—C12—H12B109.5
C3—C4—N1119.2 (3)H12A—C12—H12B109.5
C3—C4—C13123.9 (3)C2—C12—H12C109.5
N1—C4—C13116.9 (2)H12A—C12—H12C109.5
C6—C5—C10120.6 (2)H12B—C12—H12C109.5
C6—C5—N1119.4 (2)C4—C13—H13A109.5
C10—C5—N1119.9 (2)C4—C13—H13B109.5
C5—C6—C7119.8 (2)H13A—C13—H13B109.5
C5—C6—H6120.1C4—C13—H13C109.5
C7—C6—H6120.1H13A—C13—H13C109.5
C8—C7—C6120.0 (2)H13B—C13—H13C109.5
C8—C7—Cl1121.2 (2)C1—N1—C4121.1 (2)
C6—C7—Cl1118.7 (2)C1—N1—C5119.6 (2)
C7—C8—C9119.9 (2)C4—N1—C5119.2 (2)
C7—C8—Cl2121.4 (2)C1—N2—C2127.5 (2)
C9—C8—Cl2118.8 (2)C1—N2—H2N116 (2)
C10—C9—C8120.0 (3)C2—N2—H2N116 (2)
C10—C9—H9120.0
N2—C2—C3—C417.7 (5)N2—C1—N1—C46.2 (4)
C11—C2—C3—C4101.6 (5)S1—C1—N1—C4172.6 (2)
C12—C2—C3—C4134.9 (4)N2—C1—N1—C5176.2 (2)
C2—C3—C4—N15.7 (6)S1—C1—N1—C55.0 (3)
C2—C3—C4—C13177.4 (4)C3—C4—N1—C18.0 (5)
C10—C5—C6—C71.2 (4)C13—C4—N1—C1169.1 (3)
N1—C5—C6—C7176.1 (2)C3—C4—N1—C5174.3 (3)
C5—C6—C7—C81.4 (4)C13—C4—N1—C58.6 (4)
C5—C6—C7—Cl1177.59 (19)C6—C5—N1—C190.2 (3)
C6—C7—C8—C90.5 (4)C10—C5—N1—C192.5 (3)
Cl1—C7—C8—C9178.4 (2)C6—C5—N1—C487.5 (3)
C6—C7—C8—Cl2179.8 (2)C10—C5—N1—C489.7 (3)
Cl1—C7—C8—Cl21.3 (3)N1—C1—N2—C29.7 (4)
C7—C8—C9—C100.5 (4)S1—C1—N2—C2171.5 (2)
Cl2—C8—C9—C10179.2 (2)C3—C2—N2—C120.4 (4)
C6—C5—C10—C90.1 (4)C11—C2—N2—C1101.9 (4)
N1—C5—C10—C9177.1 (3)C12—C2—N2—C1139.4 (3)
C8—C9—C10—C50.7 (5)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
N2—H2N···S1i0.85 (2)2.55 (2)3.375 (2)163 (3)
Symmetry code: (i) x, y+1, z.
 

Acknowledgements

The authors thank the Yenepoya Deemed to be University for the facilities and financial support. TH is also grateful to Hacettepe University Scientific Research Project Unit (grant No. 013 D04 602 004). The authors' contributions are as follows. Conceptualization, SK and TH; synthesis, SK; X-ray analysis, SK and TH; Hirshfeld surface analysis, TH; writing (review and editing of the manuscript) SK and TH; supervision, TH and SK.

References

Return to citationAlam, O., Imran, M. & Khan, S. A. (2005). Indian J. Heterocycl. Chem. 14, 293–296.  CAS Google Scholar
Return to citationAllen, F. H., Kennard, O., Watson, D. G., Brammer, L., Orpen, A. G. & Taylor, R. (1987). J. Chem. Soc. Perkin Trans. 2 pp. S1–19.  Google Scholar
Return to citationCremer, D. & Pople, J. A. (1975). J. Am. Chem. Soc. 97, 1354–1358.  CrossRef CAS Web of Science Google Scholar
Return to citationEtter, M. C., MacDonald, J. C. & Bernstein, J. (1990). Acta Cryst. B46, 256–262.  CrossRef ICSD CAS Web of Science IUCr Journals Google Scholar
Return to citationFarrugia, L. J. (2012). J. Appl. Cryst. 45, 849–854.  Web of Science CrossRef CAS IUCr Journals Google Scholar
Return to citationGroom, C. R., Bruno, I. J., Lightfoot, M. P. & Ward, S. C. (2016). Acta Cryst. B72, 171–179.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationKadir, A., Abd Malek, N. A., Mohd Zaki, H., Hasbullah, S. A. & Yamin, B. M. (2016). IUCrData 1, x161189.  Google Scholar
Return to citationKappe, C. O. (2000). Acc. Chem. Res. 33, 879–888.  Web of Science CrossRef PubMed CAS Google Scholar
Return to citationLeite, A. C. L., de Lima, R. S., Moreira, D. R. M., Cardoso, M. V. O., Gouveia de Brito, A. C., Farias dos Santos, L. M., Hernandes, M. Z., Kiperstok, A. C., de Lima, R. S. & Soares, M. B. P. (2006). Bioorg. Med. Chem. 14, 3749–3757.  Web of Science CrossRef PubMed CAS Google Scholar
Return to citationMackenzie, C. F., Spackman, P. R., Jayatilaka, D. & Spackman, M. A. (2017). IUCrJ 4, 575–587.  Web of Science CrossRef CAS PubMed IUCr Journals Google Scholar
Return to citationOxford Diffraction (2006). CrysAlis CCD and CrysAlis RED Oxford Diffraction Ltd, Abingdon, England.  Google Scholar
Return to citationÖzçelik, S., Dinçer, M., Yıldırım, İ. & Akçamur, Y. (2004). Acta Cryst. E60, o1123–o1125.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationSaeed, A. & Bolte, M. (2010a). Acta Cryst. E66, o440.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationSaeed, A., Khera, R. A. & Parvez, M. (2010b). Acta Cryst. E66, o635.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationSheldrick, G. M. (2015a). Acta Cryst. A71, 3–8.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationSheldrick, G. M. (2015b). Acta Cryst. C71, 3–8.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationSpackman, P. R., Turner, M. J., McKinnon, J. J., Wolff, S. K., Grimwood, D. J., Jayatilaka, D. & Spackman, M. A. (2021). J. Appl. Cryst. 54, 1006–1011.  Web of Science CrossRef CAS IUCr Journals Google Scholar
Return to citationSpek, A. L. (2020). Acta Cryst. E76, 1–11.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationSriram, D., Yogeeswari, P. & Devakaram, R. V. (2006). Bioorg. Med. Chem. 14, 3113–3118.  Web of Science CrossRef PubMed CAS Google Scholar
Return to citationTurner, M. J., Thomas, S. P., Shi, M. W., Jayatilaka, D. & Spackman, M. A. (2015). Chem. Commun. 51, 3735–3738.  Web of Science CrossRef CAS Google Scholar
Return to citationYamin, B. M., Kasim, N. A. M. & Hamzah, N. (2005). Acta Cryst. E61, o55–o57.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationYamin, B. M., Lawi, R. L. & Salem, H. F. (2011b). Acta Cryst. E67, o1810.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationYamin, B. M. & Salem, H. F. (2011a). Acta Cryst. E67, o282.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationYamin, B. M. & Yusof, M. S. M. (2003). Acta Cryst. E59, o151–o152.  Web of Science CSD CrossRef CAS IUCr Journals Google Scholar

This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.

Journal logoCRYSTALLOGRAPHIC
COMMUNICATIONS
ISSN: 2056-9890
Follow Acta Cryst. E
Sign up for e-alerts
Follow Acta Cryst. on Twitter
Follow us on facebook
Sign up for RSS feeds